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Re: pedaling tricks: Coyle + Kautz studies show ...

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Cycling Equipment
Published
20 October 2006
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Ken Roberts
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  1. Jobst Brandt, in response to

    Quoted message said:

    a pro racer uses some power to raise his legs on the backstroke


    wrote

    Quoted message said:

    If he does so, he has used power that could otherwise
    have been used to push down faster.

    That's just the kind of claim I want to learn about.

    What I was asking for was more recent studies that might support that sort
    of claim. So please post references to a well-designed study in a respected
    journal in which compares
    (a) well-trained racers who allow the force from the other pedal (and
    kinetic energy) to do over 85% of the work of raising the leg; versus
    (b) well-trained racers who use the leg's own muscles to do over 85% of the
    work of raising the weight of the leg.

    Quoted message said:

    Using muscles to pull up on pedals is wasteful ...

    My observation about the 1991 study was not about pulling up on the
    _pedal_, it was about using the leg's own muscles to pull up some percentage
    of the leg's own _weight_.

    I'm pretty sure most riders most of the time use the leg's own muscles to
    pull up much less than 100% of the leg's weight -- and force from the
    other pedal does the remainder of the work.

    Only if the leg muscles' upward force exceeds 100% of the leg's weight is
    there any upward pull on the _pedal_. What surprised me in that oft-cited
    Kautz + Coyle 1991 study was that almost all those elite racers trying their
    best in a 40km simulated time-trial were getting into the 85-100% range, and
    none were below 60%.

    So if it's true that they easily could have achieved the same 40km endurance
    power output by using self-lifting of the leg's weight in the 0-15% range,
    then how come none of them did that?

    Ken

  2. Ken Roberts said:
    Quoted message said:

    a pro racer uses some power to raise his legs on the backstroke
    wrote

    Quoted message said:
    Quoted message said:

    If he does so, he has used power that could otherwise have
    been used to push down faster.

    Quoted message said:

    That's just the kind of claim I want to learn about.

    It takes no power to raise the backstroke as mentioned. It is a false
    visualization that even considers that concept. Unless the man is an
    amputee, his legs are balanced and rotate effortlessly minus viscous
    losses in the muscles and joints (which must be overcome anyway).

    Quoted message said:

    What I was asking for was more recent studies that might support
    that sort of claim. So please post references to a well-designed
    study in a respected journal in which compares:

    Quoted message said:

    (a) well-trained racers who allow the force from the other pedal (and
    kinetic energy) to do over 85% of the work of raising the leg; versus

    Quoted message said:

    (b) well-trained racers who use the leg's own muscles to do over 85% of the
    work of raising the weight of the leg.

    Wake up! You don't have to "raise" the leg! Any study of that is off
    in never land in the first place.

    Quoted message said:
    Quoted message said:

    Using muscles to pull up on pedals is wasteful ...

    Quoted message said:

    My observation about the 1991 study was not about pulling up on the
    _pedal_, it was about using the leg's own muscles to pull up some
    percentage of the leg's own _weight_.

    Quoted message said:

    I'm pretty sure most riders most of the time use the leg's own
    muscles to pull up much less than 100% of the leg's weight -- and
    force from the other pedal does the remainder of the work.

    Quoted message said:

    Only if the leg muscles' upward force exceeds 100% of the leg's
    weight is there any upward pull on the _pedal_. What surprised me
    in that oft-cited Kautz + Coyle 1991 study was that almost all those
    elite racers trying their best in a 40km simulated time-trial were
    getting into the 85-100% range, and none were below 60%.

    Quoted message said:

    So if it's true that they easily could have achieved the same 40km
    endurance power output by using self-lifting of the leg's weight in
    the 0-15% range, then how come none of them did that?

    I don't think you'll get anywhere with all this if you cannot see that
    it is all hocus pocus. If you cannot see the folly of the concept,
    reading more about it won't get you any answers.

    Jobst Brandt

  3. Jobst Brandt wrote

    Quoted message said:

    I don't think you'll get anywhere with all this
    if you cannot see that it is all hocus pocus.

    I don't think we're going to get anywhere until some smart people take the
    time to find the Kautz + Coyle 1991 study and actually _read_ it, then
    carefully think through the physics.

    Those guys did a lot of work to carefully describe their method and
    measurements. Their work has been cited several times on this newsgroup by
    highly respected posters. I don't think it's fair to just wave away their
    results with some theoretical pronouncement.

    Quoted message said:

    You don't have to "raise" the leg! Any study of that
    is off in never land in the first place.

    Somebody please take the time to look at Table 2b on page 37 of the Kautz
    1991 article. Note particularly the column labeled "-W SL (J)". I think the
    numbers in the column are for each of the sixteen elite racers, how much
    work (in Joules) the pedal did in pushing the weight of the leg upward to
    get it into position for its next down-push. Some of those numbers seem
    rather low to me, pretty close to 0 (for three riders, exactly 0).

    So if their pedal didn't push the mass of their leg up, then how did it get
    there? If something didn't "raise the leg" then how could it have made a
    downward push in their next stroke?

    Or maybe I'm all wrong because I misunderstood the article. Or maybe the
    authors made a mistake somewhere. Anyway the authors do describe how they
    calculated the number -- so this could all be checked by someone with a
    sound understanding of physics or mechanical engineering. And then I could
    get straightened out.

    Ken

    source:
    Kautz SA, Feltner ME, Coyle EF, Baylor AM: "The pedaling technique of elite
    endurance cyclists: changes with increasing workload at constant cadence".
    International Journal of Sport Biomechanics 7:29-53, 1991.

    linked from:
    http://www.edb.utexas.edu/coyle/publications.php

  4. Ken Roberts said:
    Quoted message said:

    I don't think you'll get anywhere with all this if you cannot see
    that it is all hocus pocus.

    Quoted message said:

    I don't think we're going to get anywhere until some smart people
    take the time to find the Kautz + Coyle 1991 study and actually
    _read_ it, then carefully think through the physics.

    Quoted message said:

    Those guys did a lot of work to carefully describe their method and
    measurements. Their work has been cited several times on this
    newsgroup by highly respected posters. I don't think it's fair to
    just wave away their results with some theoretical pronouncement.

    Quoted message said:
    Quoted message said:

    You don't have to "raise" the leg! Any study of that is off in
    never land in the first place.

    Quoted message said:

    Somebody please take the time to look at Table 2b on page 37 of the
    Kautz 1991 article. Note particularly the column labeled "-W SL
    (J)". I think the numbers in the column are for each of the sixteen
    elite racers, how much work (in Joules) the pedal did in pushing the
    weight of the leg upward to get it into position for its next
    down-push. Some of those numbers seem rather low to me, pretty close
    to 0 (for three riders, exactly 0).

    Quoted message said:

    So if their pedal didn't push the mass of their leg up, then how did
    it get there? If something didn't "raise the leg" then how could it
    have made a downward push in their next stroke?

    The question is what force does the other leg exert on the downward
    pedal when no muscular activity is involved. Just look at a pair of
    pedals on a bicycle, spinning on a chainless set of cranks and compute
    the energy used to raise the upward crank while ignoring the same force
    times distance effect of the downward crank. The system does not spin
    from external input once set in motion. Only bearing drag and windage
    slows it down. Both of these losses are mainly independent of
    whether there are feet and legs on those pedals.

    Quoted message said:

    Or maybe I'm all wrong because I misunderstood the article. Or
    maybe the authors made a mistake somewhere. Anyway the authors do
    describe how they calculated the number -- so this could all be
    checked by someone with a sound understanding of physics or
    mechanical engineering. And then I could get straightened out.

    This is similar to the article written about gyroscopic forces in
    bicycle wheels that make bicycling possible. The whole concept is
    easily disproven by toy scooters with 3-inch diameter wheels, roller
    blades and ultimately ice skates, but this man published an entire
    paper in his refutation of the concept (published in Physics Today),
    thereby dignifying the proposition. The work you cite about energy
    loss in a crankshaft does likewise because, for example, automotive
    engine pistons only push downward.

    I wonder whether these men believe that gravity has an effect on
    pedaling efficiency. Do recumbents with BB's above the elevation of
    the hips generate power by themselves? Is horizontal pedaling
    similarly affected to vertical pedaling? ...and other such problems.

    Quoted message said:

    source:

    Quoted message said:

    Kautz SA, Feltner ME, Coyle EF, Baylor AM: "The pedaling technique
    of elite endurance cyclists: changes with increasing workload at
    constant cadence". International Journal of Sport Biomechanics
    7:29-53, 1991.

    Quoted message said:

    linked from:

    http://www.edb.utexas.edu/coyle/publications.php

    Jobst Brandt

  5. email hidden said:
    Ken Roberts said:
    Quoted message said:

    a pro racer uses some power to raise his legs on the backstroke
    wrote

    Quoted message said:
    Quoted message said:

    If he does so, he has used power that could otherwise have
    been used to push down faster.

    Quoted message said:

    That's just the kind of claim I want to learn about.

    It takes no power to raise the backstroke as mentioned.

    This is true.

    Quoted message said:

    It is a false visualization that even considers that concept. Unless
    the man is an amputee, his legs are balanced and rotate effortlessly
    minus viscous losses in the muscles and joints (which must be overcome
    anyway).

    But I don't believe it's a false visualization.

    If the right foot is pushing down, the weight of the right leg raises
    the left leg anyway. But if you raise the left leg with its muscles, so
    it's hovering above the left pedal as it goes up, not being pushed by
    it, the weight of the left leg will be added to the total force on the
    right pedal.

    If you're sitting on a seesaw, going down, and the person on the other
    end jumps off suddenly, or is winched upwards by some additional force,
    you go down a lot faster. You apply the same force as before, but the
    counterweight has gone, and the torque at the fulcrum is greater.

    Some diagrams, although I think this is fairly obvious really:

    Let's say our legs weigh 5kg each and we push with 10kg force on the
    downstroke.

    Normal pedalling:

    L ---------- + ---------- R
    | |
    v weight 5kg v weight 5kg + 10kg push

    In this system, torque at the fulcrum (marked with a +) is 15r - 5r =
    10r where r is crank length. So we get a full 10kg push, not 5kg, in
    spite of having to "lift" the left leg. So far so good.

    Now with 1kg of leg-lift on the up pedal:

    L ---------- + ---------- R
    | |
    v 5kg - 1kg lift v weight 5kg + 10kg push

    torque is increased to 15r - 4r = 11r.

    If you just lift the up-leg a little bit, reducing the force between
    pedal and foot, you're already adding to the total torque on the crank
    (assuming the right leg muscles are pushing down as much as they were
    before). You can lift more and more until the point at which the up-leg
    is "hovering", and beyond that point, until it's actually pulling up on
    the cleat.

    Actually pulling up, as opposed to just "leg-lifting":

    ^
    | weight 5kg - 6kg leg-lift
    L ---------- + ---------- R
    |
    v weight 5kg + 10kg push

    Torque is 16r.

    The point that you don't have to be pulling up on the cleat for the
    up-leg to be contributing to the crank torque is a good point I think,
    that hadn't occurred to me before.

    I think the distinction between leg-raising and pulling up makes sense.

  6. "Ken Roberts" <[email hidden]> wrote in message
    news:[email hidden]...

    Quoted message said:

    Jobst Brandt, in response to

    Quoted message said:

    a pro racer uses some power to raise his legs on the backstroke


    wrote

    Quoted message said:

    If he does so, he has used power that could otherwise
    have been used to push down faster.

    That's just the kind of claim I want to learn about.

    What I was asking for was more recent studies that might support
    that sort of claim. So please post references to a well-designed study
    in a respected journal in which compares
    (a) well-trained racers who allow the force from the other pedal (and
    kinetic energy) to do over 85% of the work of raising the leg; versus
    (b) well-trained racers who use the leg's own muscles to do over 85%
    of the work of raising the weight of the leg.

    Quoted message said:

    Using muscles to pull up on pedals is wasteful ...

    My observation about the 1991 study was not about pulling up on the
    _pedal_, it was about using the leg's own muscles to pull up some
    percentage of the leg's own _weight_.

    I'm pretty sure most riders most of the time use the leg's own muscles
    to pull up much less than 100% of the leg's weight -- and force from
    the other pedal does the remainder of the work.

    Only if the leg muscles' upward force exceeds 100% of the leg's weight
    is there any upward pull on the _pedal_. What surprised me in that
    oft-cited Kautz + Coyle 1991 study was that almost all those elite
    racers trying their best in a 40km simulated time-trial were getting
    into the 85-100% range, and none were below 60%.

    So if it's true that they easily could have achieved the same 40km
    endurance power output by using self-lifting of the leg's weight in
    the 0-15% range, then how come none of them did that?

    Read the study on Powercranks. These train the cyclist to pull up on the
    backstroke.

    http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?CMD=search&DB=pubmed

    Many here, as well as many sports scientists, do not believe in the
    effect. I personally believe in this effect having trained with them for
    several thousand miles and subsequently improved my racing performance
    (at age 50).

    Phil H

  7. Ben C Eggs said:
    Quoted message said:
    Quoted message said:

    > If a pro able to put out 400 watts uses some of that power to
    > raise his legs on the backstroke, that's nice, but the question
    > is whether he can put out more power steadily.

    Quoted message said:
    Quoted message said:
    Quoted message said:

    > The usual debate is over whether using different muscles more
    > heavily will end up being overall more efficient, not a perpetual
    > motion scheme.

    Quoted message said:
    Quoted message said:
    Quoted message said:

    That's just the kind of claim I want to learn about.

    Quoted message said:
    Quoted message said:

    It takes no power to raise the backstroke as mentioned.

    Quoted message said:

    This is true.

    Quoted message said:
    Quoted message said:

    It is a false visualization that even considers that concept. Unless
    the man is an amputee, his legs are balanced and rotate effortlessly
    minus viscous losses in the muscles and joints (which must be overcome
    anyway).

    Quoted message said:

    But I don't believe it's a false visualization.

    It is false in that it implies that action costs power or for that
    matter work, because it doesn't.

    Quoted message said:

    If the right foot is pushing down, the weight of the right leg
    raises the left leg anyway. But if you raise the left leg with its
    muscles, so it's hovering above the left pedal as it goes up, not
    being pushed by it, the weight of the left leg will be added to the
    total force on the right pedal.

    Sure, just try climbing a grade by just pulling up on pedals and
    you'll see how ineffective those muscles are at doing significant
    work. Nature makes these muscles to operate in walking at best and
    even then, stepping over a low fence is not easy, although pushing
    down by putting one foot on the top of that obstacle is not.

    Just because you have such leg retracting muscles doesn't mean they
    are effective in propelling you. Pulling up is best done with the leg
    extended as in sprinting and climbing when standing. In those
    exercises the leg doesn't so much as pull up as giving anchor to the
    force of the descending leg, the big force being achieved when the
    pedals are horizontal. That is not the same as puling up in seated
    pedaling.

    Quoted message said:

    If you're sitting on a seesaw, going down, and the person on the
    other end jumps off suddenly, or is winched upward by some
    additional force, you go down a lot faster. You apply the same
    force as before, but the counterweight has gone, and the torque at
    the fulcrum is greater.

    Well, then you better get that other leg amputated to give more down
    force.

    Jobst Brandt

  8. [email hidden] aka Jobst Brandt rhetorically asked:

    Quoted message said:

    ...Do recumbents with BB's above the elevation of the hips generate power by
    themselves?...

    In my considerable experience, no. 🙁

    --
    Tom Sherman - Here, not there.

  9. Ben C said:
    email hidden said:
    Ken Roberts said:

    > a pro racer uses some power to raise his legs on the backstroke
    > wrote

    Quoted message said:

    > If he does so, he has used power that could otherwise have
    > been used to push down faster.

    Quoted message said:

    That's just the kind of claim I want to learn about.

    It takes no power to raise the backstroke as mentioned.

    This is true.

    Quoted message said:

    It is a false visualization that even considers that concept. Unless
    the man is an amputee, his legs are balanced and rotate effortlessly
    minus viscous losses in the muscles and joints (which must be overcome
    anyway).

    But I don't believe it's a false visualization.

    If the right foot is pushing down, the weight of the right leg raises
    the left leg anyway. But if you raise the left leg with its muscles, so
    it's hovering above the left pedal as it goes up, not being pushed by
    it, the weight of the left leg will be added to the total force on the
    right pedal.

    If you're sitting on a seesaw, going down, and the person on the other
    end jumps off suddenly, or is winched upwards by some additional force,
    you go down a lot faster. You apply the same force as before, but the
    counterweight has gone, and the torque at the fulcrum is greater.

    Some diagrams, although I think this is fairly obvious really:

    Let's say our legs weigh 5kg each and we push with 10kg force on the
    downstroke.

    Normal pedalling:

    L ---------- + ---------- R
    | |
    v weight 5kg v weight 5kg + 10kg push

    In this system, torque at the fulcrum (marked with a +) is 15r - 5r =
    10r where r is crank length. So we get a full 10kg push, not 5kg, in
    spite of having to "lift" the left leg. So far so good.

    Now with 1kg of leg-lift on the up pedal:

    L ---------- + ---------- R
    | |
    v 5kg - 1kg lift v weight 5kg + 10kg push

    torque is increased to 15r - 4r = 11r.

    If you just lift the up-leg a little bit, reducing the force between
    pedal and foot, you're already adding to the total torque on the crank
    (assuming the right leg muscles are pushing down as much as they were
    before). You can lift more and more until the point at which the up-leg
    is "hovering", and beyond that point, until it's actually pulling up on
    the cleat.

    Actually pulling up, as opposed to just "leg-lifting":

    ^
    | weight 5kg - 6kg leg-lift
    L ---------- + ---------- R
    |
    v weight 5kg + 10kg push

    Torque is 16r.

    The point that you don't have to be pulling up on the cleat for the
    up-leg to be contributing to the crank torque is a good point I think,
    that hadn't occurred to me before.

    I think the distinction between leg-raising and pulling up makes sense.

    Or

    L ---------- + ---------- R
    | |
    v weight 5kg v weight 5kg + 10kg push
    + 1kg push

    Torque is 9r.

    Some contend this is common among cyclists who learned to ride without
    foot retention, since some pressure is required to keep one's feet on
    the pedal.

    Obviously, pushing with the up-leg is counterproductive.

    --
    Tom Sherman - Here, not there.

  10. Phil Holman wrote

    Quoted message said:

    Read the study on Powercranks.

    That link didn't work for me -- maybe because I'm not a subscriber to
    PubMed?

    Interesting that the Coyle and Kautz 1991 studies did figure into the
    (giant) (sometimes fascinating) "Powercranks" thread on this newsgroup back
    in 2004. I've only recently been involved with this group, but I read it in
    the archives.

    I recall that at least one highly-regarded participant who did _not_
    advocate using Powercranks clearly understood that the 1991 Kautz and Coyle
    studies showed that the elite racers were leg-self-lifting close to 100% of
    leg-weight.

    And I recall one prominent Powercranks advocate wondered how that result
    could have been possible without training with Powercranks.

    Ken

  11. "Ken Roberts" <[email hidden]> wrote in message
    news:[email hidden]...

    Quoted message said:

    Phil Holman wrote

    Quoted message said:

    Read the study on Powercranks.

    That link didn't work for me -- maybe because I'm not a subscriber to
    PubMed?


    a.. Luttrell MD,
    b.. Potteiger JA.
    Department of Health, Sport and Exercise Science, University of Kansas,
    Lawrence 66045, USA.

    Powercranks use a specially designed clutch to promote independent pedal
    work by each leg during cycling. We examined the effects of 6 wk of
    training on cyclists using Powercranks (n=6) or normal cranks (n=6) on
    maximal oxygen consumption (VO2max) and anaerobic threshold (AT) during
    a graded exercise test (GXT), and heart rate (HR), oxygen consumption
    (VO2), respiratory exchange ration (RER), and gross efficiency (GE)
    during a 1-hour submaximal ride at a constant load. Subjects trained at
    70% of VO2max for 1 h.d(-1), 3 d.wk(-1), for 6 weeks. The GXT and 1-hour
    submaximal ride were performed using normal cranks pretraining and
    posttraining. The 1-hour submaximal ride was performed at an intensity
    equal to approximately 69% of pretraining VO2max with VO2, RER, GE, and
    HR determined at 15-minute intervals during the ride. No differences
    were observed between or within groups for VO2max or AT during the GXT.
    The Powercranks group had significantly higher GE values than the normal
    cranks group (23.6 +/- 1.3% versus 21.3 +/- 1.7%, and 23.9 +/- 1.4%
    versus 21.0 +/- 1.9% at 45 and 60 min, respectively), and significantly
    lower HR at 30, 45, and 60 minutes and VO2 at 45 and 60 minutes during
    the 1-hour submaximal ride posttraining. It appears that 6 weeks of
    training with Powercranks induced physiological adaptations that reduced
    energy expenditure during a 1-hour submaximal ride.

    PMID: 14666944 [PubMed - indexed for MEDLINE]

    Quoted message said:

    Interesting that the Coyle and Kautz 1991 studies did figure into the
    (giant) (sometimes fascinating) "Powercranks" thread on this newsgroup
    back in 2004. I've only recently been involved with this group, but I
    read it in the archives.

    I recall that at least one highly-regarded participant who did _not_
    advocate using Powercranks clearly understood that the 1991 Kautz and
    Coyle studies showed that the elite racers were leg-self-lifting close
    to 100% of leg-weight.

    Probably Andy Coggan

    Quoted message said:


    And I recall one prominent Powercranks advocate wondered how that
    result could have been possible without training with Powercranks.

    Probably Frank Day, the Powercranks inventor.

    I tested and reported on them back in 2000/2001. For my n =1 study I
    increased power output by approx 10% which gave me just over a 1mph
    increase in TT speed and also put me in the medals at US and World
    Masters Track.

    Phil H

  12. On 2006-10-21, Johnny Sunset aka Tom Sherman <[email hidden]> wrote:
    [snip]

    Quoted message said:

    Or

    L ---------- + ---------- R
    | |
    v weight 5kg v weight 5kg + 10kg push
    + 1kg push

    Torque is 9r.

    Some contend this is common among cyclists who learned to ride without
    foot retention, since some pressure is required to keep one's feet on
    the pedal.

    This sounds a plausible explanation actually of why cycling feels better
    and seems to work better with clips, even though you don't feel like
    you're pulling up significantly.

    I believe Jobst when he says the muscles that lift up are much less
    effective than the ones that push down. This sounds like why even pros
    only lift 85% to 100% of leg weight (whereas they're pushing down
    several hundred % of leg weight on the other side).

    A downwards push on the up-pedal doesn't in theory waste energy, just
    reduces torque. But then this is something I've never been quite sure of
    about the human body.

    If you hold up a small weight for a short time, without moving it, your
    arm gets very tired quite quickly, but you are only applying force not
    doing work. But is your body burning calories just to keep those muscles
    contracted? As though our internal construction resembled a system of
    slipping belts?

    Certainly pushing down on the up-pedal might make your legs feel more
    tired after less effort, even if it doesn't actually consume energy.

    As someone else pointed out, a cyclist isn't too bothered about
    efficiency per se, more about how far and how fast he can go. Noone
    minds if they have to eat twice as many cakes.

  13. Phil Holman wrote

    Quoted message said:

    Read the study on Powercranks.


    Quote from study's abstract:

    Quoted message said:

    . . . gross efficiency (GE) . . . The Powercranks group had significantly
    higher GE values than the normal cranks group ...

    I'm generally uninterested in improving "Efficiency". I confess I do not
    know what the "Gross" kind is.

    My goal is higher sustainable Power (the kind that's measured in Watts).

    In the last couple of months, Sharon and I have been trying a new training
    method.

    I don't know any well-controlled comparative studies to support it, so I'm
    sure I'm going to get skewered on this newsgroup for mentioning it, but . .
    .. here goes . . .
    getting out and riding up a big hill.

    Sharon has already achieved a 10% gain in speed and power. And she says
    making it all the way to the top of a big hill is intrinsically satisfying.

    Ken

  14. "Ken Roberts" <[email hidden]> wrote in message
    news:[email hidden]...

    Quoted message said:

    Phil Holman wrote

    Quoted message said:

    Read the study on Powercranks.


    Quote from study's abstract:

    Quoted message said:

    . . . gross efficiency (GE) . . . The Powercranks group had
    significantly higher GE values than the normal cranks group ...

    I'm generally uninterested in improving "Efficiency". I confess I do
    not know what the "Gross" kind is.

    It is generally accepted in sports/cycling that GE is approximately 25%
    +/- a few %. This means that if 1000 joules of energy are expended but
    an athlete, only 250 will contribute to useful work (forward motion). If
    you
    improve GE, for the same 1000 joules, more energy can be utilized for
    forward motion.

    Quoted message said:


    My goal is higher sustainable Power (the kind that's measured in
    Watts).

    If you want to talk in watts, 1000 joules per second (1000 watts) are
    burned by the average rider to generate 250 watts measured at the wheel.
    If this is their max sustainable output for a 40k TT, by improving GE by
    3%, they will now potentially generate 280 watts (12% increase)

    Quoted message said:


    In the last couple of months, Sharon and I have been trying a new
    training method.

    I don't know any well-controlled comparative studies to support it, so
    I'm sure I'm going to get skewered on this newsgroup for mentioning
    it, but . . . here goes . . .
    getting out and riding up a big hill.

    Sharon has already achieved a 10% gain in speed and power. And she
    says making it all the way to the top of a big hill is intrinsically
    satisfying.

    Well OK, all seasoned riders/racers already do this and more. Once you
    have made all the training gains that can be made over several years,
    where do you go from there?

    Phil H

  15. Phil Holman wrote

    Quoted message said:

    If you want to talk in watts, 1000 joules per second (1000 watts) are
    burned by the average rider to generate 250 watts measured at the wheel.
    If this is their max sustainable output for a 40k TT, by improving GE by
    3%, they will now potentially generate 280 watts (12% increase)

    OK, so what I want is Watts delivered thru the wheel to the road (not Watts
    burned). I'm not getting why that study couldn't measure that (like the
    Coyle Kautz 1991).

    Quoted message said:
    Quoted message said:

    getting out and riding up a big hill.

    Quoted message said:

    Well OK, all seasoned riders/racers already do this and more.

    "and more"? Not me.
    I'm usually trying to play with how _little_ training I can get away with,
    and how I can minimize its impact on the rest of my life -- and yet still
    achieve my long-single-day and high-pass touring goals. Since I don't have
    a hill close by where I live, I tried to see how training with no serious
    hills would work -- but for my goals it didn't. So now I try to get some
    serious hill work each week.

    Quoted message said:

    Once you have made all the training gains that can be made over several
    years, where do you go from there?

    I think you're raising the right key issue, but I'm not in that situation.
    I'm sure I've got lots of opportunities for performance gains if I put in
    more hours per week, but I have no intention of doing that. Sounds like I
    don't need to consider Powercranks.

    Ken

  16. "Ken Roberts" <[email hidden]> wrote in message
    news:[email hidden]...

    Quoted message said:

    Phil Holman wrote

    Quoted message said:

    If you want to talk in watts, 1000 joules per second (1000 watts) are
    burned by the average rider to generate 250 watts measured at the
    wheel. If this is their max sustainable output for a 40k TT, by
    improving GE by 3%, they will now potentially generate 280 watts (12%
    increase)

    OK, so what I want is Watts delivered thru the wheel to the road (not
    Watts burned). I'm not getting why that study couldn't measure that
    (like the Coyle Kautz 1991).

    It is less reliable. Max sustainable wattage output varies considerably
    from day to day and would confound any meaningful result. On the other
    hand, if valid, the result shows that a higher useful wattage can be
    achieved with the same energy burn.
    They could only run an experiment like you suggest if they had immediate
    feedback on O2 uptake and could measure power output increases at a
    fixed O2 uptake. I'm not sure they have this capability and as far as I
    can see, there is no difference in the conclusion.

    Quoted message said:
    Quoted message said:
    Quoted message said:

    getting out and riding up a big hill.

    Quoted message said:

    Well OK, all seasoned riders/racers already do this and more.

    "and more"? Not me.
    I'm usually trying to play with how _little_ training I can get away
    with, and how I can minimize its impact on the rest of my life --
    and yet still achieve my long-single-day and high-pass touring goals.
    Since I don't have a hill close by where I live, I tried to see how
    training with no serious hills would work -- but for my goals it
    didn't. So now I try to get some serious hill work each week.

    Quoted message said:

    Once you have made all the training gains that can be made over
    several years, where do you go from there?

    I think you're raising the right key issue, but I'm not in that
    situation. I'm sure I've got lots of opportunities for performance
    gains if I put in more hours per week, but I have no intention of
    doing that. Sounds like I don't need to consider Powercranks.

    I agree, Powercranks are no easy way to achieve performance improvement.
    Sounds like you have plenty of lower hanging fruit to work with.

    Phil H

  17. Phil Holman wrote

    Quoted message said:

    It is generally accepted in sports/cycling that GE is approximately 25%
    +/- a few %. This means that if 1000 joules of energy are expended but an
    athlete, only 250 will contribute to useful work (forward motion). If you
    improve GE, for the same 1000 joules, more energy can be utilized for
    forward motion.
    . . . The Powercranks group had significantly higher GE values than the
    normal cranks group ...

    This is confusing to me. I thought this 25% number was based on the
    fundamental biochemistry of aerobic respiration.

    Why would it have been expected that shifting the mix of muscle moves in
    training workouts more toward "pulling up", would have changed biochemistry?
    Is there supposed to be something different about the biochemistry of fibers
    in the hip-flexion muscles from the fibers in the hip-extension and
    knee-extension muscles used in the down-push?

    If it means a change in the proportions of Type I versus Type II muscle
    fibers, then OK -- but isn't that an expected result of a well-designed
    training program for _any_ muscle group, not just hip-flexion / up-pulling
    muscles?

    Here's a speculation about how focusing training workouts more on
    upward-pull muscles might improve performance, which _might_ make sense on
    my current non-expert knowledge of physiology:
    "Upward-pull hip-flexion muscles are well-positioned to deliver propulsive
    work, but in most well-trained cyclists less fully developed for aerobic
    work than the big down-push muscles. Therefore there's more "open territory"
    available in the hip-flexion fibers for increasing capillary density and
    mitochondria enzyme concentrations (etc.) at lower biological "cost". So
    the same amount of training focused more on upward-pull can be expected to
    result in a larger gain in local peripheral muscle aerobic capacity than if
    it training were spread proportionally to the current local capacities. The
    resulting larger total of peripheral aerobic capacity can then be used to
    put a larger _training_ stress on Central cardio-vascular capacity than was
    available before, which after adaptation results in a higher VO2max, and
    thus a higher sustainable power output to the wheel."

    But I'm not sure what that speculative theory has to do with changing "Gross
    Efficiency" as defined above. And I'm not sure how it fits with this quote
    from the abstract of the study:

    Quoted message said:

    "Subjects trained . . . for 6 weeks."

    Ken

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